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首页> 外文期刊>Materials Science and Engineering >Investigations of inhomogeneous mechanical properties and plastic deformations in HIPed P/M nickel-base superalloy FGH96 by using micro-indentation methods
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Investigations of inhomogeneous mechanical properties and plastic deformations in HIPed P/M nickel-base superalloy FGH96 by using micro-indentation methods

机译:显微压痕法研究HIPed P / M镍基高温合金FGH96的非均匀力学性能和塑性变形

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摘要

The purpose of this paper is to investigate the influence of non-uniform precipitate distribution on local plastic deformation in HIPed P/M nickel-base superalloy FGH96 by using micro-indentation methods. The micro-indentation tests were conducted in the indenter load range from 100 mN to 450 mN and the loading rate range from 1.94 mN/s to 19.37 mN/s at the room temperature. Then, the load-displacement data of precipitate concentration areas (PCA) and precipitate sparsity areas (PSA) were obtained, respectively. The results show that both PCA and PSA exhibited decreasing micro-hardness during indentations, which proved that the size effect was significant in P/M nickel-base superalloy FGH96 as well. The high micro-hardness of PCA indicates that γ' precipitate could effectively improve the resistance to deformation. In contrast, the influences of indenter load and loading rate on Young's modulus were slight. Through plotting test data, it was revealed that a better linear relationship existed between H~2 and 1/h. Moreover, the densities of geometrically necessary dislocations (GNDs) and statistically stored dislocations (SSDs) were obtained by data fitting. Like other alloys, the GND density fast decreased with the increase of indentation depth during indentations. The SSD density of PCA was higher than that of PSA when the loading rate was lower than 12.91 mN/s, indicating that the γ' precipitates could block the dislocation movements and induce strong interactions. However, this mechanism was inconspicuous at high loading rates due to precipitation shearing mechanism. In addition, the FEM method and forward analysis algorithms were used to predict the micro-indentation parameters. Comparing with FEM method, the prediction results were more accurate for forward analysis algorithms. The constitutive equations of PCA and PSA were established by means of reverse analysis algorithms. The microstructural simulation reflected that the interactions between PCA and PSA were significant during uniaxial compression. The high stress concentration existing in PCA between two adjacent PSAs may cause microcracks and void dislocations at the large deformations.
机译:本文的目的是通过微压痕方法研究不均匀的析出物分布对HIPed P / M镍基高温合金FGH96中局部塑性变形的影响。在室温下,在压头负载范围为100 mN至450 mN以及负载速率范围为1.94 mN / s至19.37 mN / s的条件下进行微压痕测试。然后,分别获得了沉淀物浓度区域(PCA)和稀疏性区域(PSA)的载荷-位移数据。结果表明,压痕过程中PCA和PSA均表现出降低的显微硬度,这证明了P / M镍基高温合金FGH96的尺寸效应也很明显。 PCA的高显微硬度表明γ'沉淀可有效提高抗变形能力。相反,压头载荷和载荷速率对杨氏模量的影响很小。通过绘制测试数据,发现H〜2与1 / h之间存在较好的线性关系。此外,通过数据拟合获得了几何上必要的位错(GND)和统计存储的位错(SSD)的密度。像其他合金一样,压痕过程中GND密度会随着压痕深度的增加而快速降低。当加载速率低于12.91 mN / s时,PCA的SSD密度高于PSA的SSD密度,表明γ'沉淀物可以阻止位错运动并引起强烈的相互作用。然而,由于沉淀剪切机制,该机制在高加载速率下并不明显。此外,使用有限元方法和正向分析算法来预​​测微压痕参数。与有限元方法相比,预测结果对前向分析算法更为准确。通过逆分析算法建立了PCA和PSA的本构方程。微观结构模拟表明,PCA和PSA之间的相互作用在单轴压缩过程中很明显。存在于两个相邻PSA之间的PCA中的高应力集中可能会导致大变形处的微裂纹和空隙位错。

著录项

  • 来源
    《Materials Science and Engineering》 |2012年第30期|p.233-245|共13页
  • 作者单位

    State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi'an 710072, PR China,School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, PR China;

    State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi'an 710072, PR China,School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, PR China;

    School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, PR China;

    Beijing Institute of Aeronautical Materials, Beijing 100095, PR China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    P/M nickel-base superalloy FGH96; precipitate distribution; mechanical property; dislocation density; deformation mechanism;

    机译:P / M镍基高温合金FGH96;沉淀物分布机械性能位错密度变形机制;

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